Numerical analysis of ballistic-electron transport in magnetic fields by using a quantum point contact and a quantum wire

T. Usuki, M. Saito, M. Takatsu, R. A. Kiehl, and N. Yokoyama
Phys. Rev. B 52, 8244 – Published 15 September 1995
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Abstract

We report the numerical analysis of our experimental results for electron-wave propagation from a quantum point contact to a quantum wire. Our numerical method solves the boundary problem of a lattice model, and determines wave functions at an arbitrary site. This method also includes a recursive Green’s-function method. Our study found oscillations in the conductance, and magnetic suppression of those oscillations. For a simple model, we simulate the oscillations directly related to the channel number in the quantum wire. To understand the magnetic suppression, we investigate the dependence of the electron-wave propagation on the magnetic field using a realistic model. Numerical results show that a realistic rounded corner at the point-contact and a magnetic field could suppress the oscillations. We also discuss the transition from a classical skipping orbit with clear circular segments and focusing to a quantum edge state along a potential wall.

  • Received 10 January 1995

DOI:https://doi.org/10.1103/PhysRevB.52.8244

©1995 American Physical Society

Authors & Affiliations

T. Usuki, M. Saito, M. Takatsu, R. A. Kiehl, and N. Yokoyama

  • Quantum Electron Devices Laboratory, Fujitsu Laboratories Ltd., 10-1 Morinosato-Wakamiya, Atsugi 243-01, Japan

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Issue

Vol. 52, Iss. 11 — 15 September 1995

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